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纳米二氧化硅和纳米氧化铁在受氯化物污染混凝土中对钢筋的保护应用:环氧纳米复合涂层和纳米改性砂浆

Application of Nano-SiO₂ and Nano-Fe₂O₃ for Protection of Steel Rebar in Chloride Contaminated Concrete: Epoxy Nanocomposite Coatings and Nano-Modified Mortars.

作者信息

Nguyen Tuan Anh, Nguyen The Huyen, Pham Thi Lua, Dinh Thi Mai Thanh Dinh, Thai Hoang, Shi Xianming

出版信息

J Nanosci Nanotechnol. 2017 Jan;17(1):427-36. doi: 10.1166/jnn.2017.12396.

DOI:10.1166/jnn.2017.12396
PMID:29624293
Abstract

The effect of incorporating nanoparticles on the corrosion resistance of epoxy-coated steel in salt contaminated mortars was investigated using potentiodynamic polarization and electrochemical impedance spectroscopy. Researchers conducted electrochemical monitoring of the coated steel embedded in mortar over 100 days of immersion in 0.1 M NaOH solutions. The chloride permeability and microstructure of Portland cement mortar with admixed nano-materials (at 1% by weight of cement) were examined using an electromigration test and field emission scanning electron microscopy (FESEM). Electrochemical monitoring showed that nano Fe₂O₃ improved the corrosion resistance of the coated rebar. The incorporation of a small amount of nano Fe₂O₃ (1% by total weight of resin and hardener) into the epoxy coating reduced the corrosion current of the epoxy-coated steel in chloride-contaminated mortar (0.3% chloride by weight of cement). After 100 days of immersion, the nanoparticles reduced the corrosion current of epoxy-coated steel by a factor of 6. The FESEM test revealed that admixing of nano-materials not only led to denser cement mortar but also changed the morphology of cement hydration products. The test results of compressive strength showed that nanoparticles increased the strength of cement mortar. The electromigration test showed that the incorporation of nanoparticles improved the chloride penetration resistance of the mortar, as indicated by the reduced apparent diffusion coefficients of the chloride anion. When nano-SiO₂ and nano-Fe₂O₃ were admixed into fresh cement mortar at 1% by weight of cement, the value of D(Cl−) was decreased by 83%, from 7.35×10(−11) m²/s (control specimen) to 1.21×10(−11) m²/s and 1.36×10(−11) m²/s, respectively.

摘要

采用动电位极化和电化学阻抗谱研究了纳米颗粒对盐污染砂浆中环氧涂层钢耐蚀性的影响。研究人员对埋入砂浆中的涂层钢在0.1 M NaOH溶液中浸泡100天进行了电化学监测。使用电迁移试验和场发射扫描电子显微镜(FESEM)对掺有纳米材料(占水泥重量的1%)的波特兰水泥砂浆的氯离子渗透性和微观结构进行了检测。电化学监测表明,纳米Fe₂O₃提高了涂层钢筋的耐蚀性。在环氧涂层中加入少量纳米Fe₂O₃(占树脂和固化剂总重量的1%)可降低环氧涂层钢在氯离子污染砂浆(占水泥重量0.3%的氯离子)中的腐蚀电流。浸泡100天后,纳米颗粒使环氧涂层钢的腐蚀电流降低了6倍。FESEM测试表明,掺加纳米材料不仅使水泥砂浆更加致密,而且改变了水泥水化产物的形态。抗压强度测试结果表明,纳米颗粒提高了水泥砂浆的强度。电迁移试验表明,纳米颗粒的加入提高了砂浆的抗氯离子渗透性,氯离子阴离子的表观扩散系数降低表明了这一点。当纳米SiO₂和纳米Fe₂O₃以水泥重量的1%掺入新鲜水泥砂浆中时,D(Cl−)的值分别从7.35×10(−11) m²/s(对照试样)降至1.21×10(−11) m²/s和1.36×10(−11) m²/s,降低了83%。

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